Inhibiting Interfacial Failure in Garnet‐Based Solid‐State Batteries with High‐Capacity Anodes: Mechanism and Strategies

Z Zhexi Xiao (School of Chemistry South China Normal University Guangzhou 510006 China) Z Zewei Zou (Department of Chemical Engineering Beijing Key Laboratory of Green Chemical Reaction Engineering and Technology Tsinghua University Beijing 100084 China) K Kehao Zhao Z Zhenkang Lin (School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 China) B Bingchen Zhang (Department of Laboratory Medicine Dongguan Institute of Clinical Cancer Research The Tenth Affiliated Hospital Southern Medical University (Dongguan People's Hospital) Dongguan P. R. China) Y Yaxiong Yu (School of Energy Science and Engineering Central South University Changsha 410083 China) C Chang Zhu (Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering) K Kang Xu (SES AI Corp) L Lidan Xing (National and Local Joint Engineering Research Center of MPTES in High Energy and Safety LIBs, Engineering Research Center of MTEES (Ministry of Education), Research Center of BMET (Guangdong Province), and Key Lab. of ETESPG(GHEI), School of Chemistry) W Weishan Li (National Key Laboratory of Advanced Micro and Nano Manufacture Technology, Key Laboratory of Polymer Chemistry and Physics of Ministry of Education, School of Materials Science and Engineering)

Abstract

AbstractGarnet‐based solid‐state electrolytes (SSEs) with exceptional reductive stability and superior ionic conductivity have emerged as promising candidates for next‐generation solid‐state batteries (SSBs). However, critical interface challenges still persist in practical implementations. This review systematically examines interfacial failure mechanisms in garnet SSE systems with high‐capacity anodes (Si, metallic Li) through combined mechanical‐electrochemical perspectives. For Si‐based anodes, a microstructure‐property‐performance relationship is established by analyzing strain mismatch‐induced degradation, correlating ionic transport barriers with lithiation kinetics under varying internal microstructures, particle sizes, and external pressures. Multiscale stress‐relief strategies spanning atomic‐level interface engineering to macroscopic pressure optimization are proposed. Regarding Li metal interfaces, breakthrough understandings of grain boundary (GB) charge distribution effects on Li filament propagation are highlighted, along with innovative solutions for kinetic inhibition. Particular emphasis is placed on dry battery electrode (DBE) fabrication techniques as scalable approaches for achieving intimate interfacial contact in industrial‐scale SSB production. By integrating fundamental mechanical‐electrochemical insights with practical engineering considerations, this work quantitatively decouple the strain‐lithiation interplay at Si/garnet interfaces, the regulation law of GB charge distribution on lithium dendrites and the industrial potential of combining DBE with fluidized bed technology for the first time, charting a viable path toward industrial SSBs with >400 Wh kg−1 energy density.

Article Details

Volume / Issue Vol. 37, Issue 38
Published September 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

Z

Zhexi Xiao

School of Chemistry South China Normal University Guangzhou 510006 China

Z

Zewei Zou

Department of Chemical Engineering Beijing Key Laboratory of Green Chemical Reaction Engineering and Technology Tsinghua University Beijing 100084 China

K

Kehao Zhao

Z

Zhenkang Lin

School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 100081 China

B

Bingchen Zhang

Department of Laboratory Medicine Dongguan Institute of Clinical Cancer Research The Tenth Affiliated Hospital Southern Medical University (Dongguan People's Hospital) Dongguan P. R. China

Y

Yaxiong Yu

School of Energy Science and Engineering Central South University Changsha 410083 China

C

Chang Zhu

Key Laboratory of Biomass Chemical Engineering of Ministry of Education, College of Chemical and Biological Engineering

K

Kang Xu

SES AI Corp

L

Lidan Xing

National and Local Joint Engineering Research Center of MPTES in High Energy and Safety LIBs, Engineering Research Center of MTEES (Ministry of Education), Research Center of BMET (Guangdong Province), and Key Lab. of ETESPG(GHEI), School of Chemistry

W

Weishan Li

National Key Laboratory of Advanced Micro and Nano Manufacture Technology, Key Laboratory of Polymer Chemistry and Physics of Ministry of Education, School of Materials Science and Engineering